论文标题

液滴变形和内部循环对阻力系数的影响

The effect of droplet deformation and internal circulation on drag coefficient

论文作者

Lin, Yushu, Palmore Jr, John

论文摘要

当前的研究使用数值方法来研究液滴变形和内部循环对液滴动力学的影响。尽管液滴阻力是一个经典的研究领域,但在理解大液滴的运动方面仍然存在理论上的差距。在喷雾燃烧等应用中,生成各种尺寸的液滴并随着流动而移动。大液滴倾向于在流动中变形,并且由于这种变形而与流动具有复杂的相互作用。为了更好地喷雾,需要改善对液滴的物理理解。在喷雾条件下,液滴会经历高温和压力环境,并且液体和气体之间的耦合得到增强。因此,与大气条件相比,变形和内部循环将影响液滴阻力系数。为了研究液滴形状和内部循环如何影响液滴动力学的机制,我们将使用直接的数值模拟(DNS)在高压空气中模拟以其末端速度下降的液滴。用于模拟的多相流的接口捕获DNS开发的内部代码。计算阻力系数,结果与现有文献略有变形的液滴一致。结果表明,阻力系数与液滴变形和液滴内部循环直接相关。该论文还开发了一种理论,以说明韦伯数量和液体/气体特性在液滴变形中的影响。

The current study uses numerical approaches to investigate the effect of droplet deformation and internal circulation on droplet dynamics. Although droplet drag is a classical area of study, there are still theoretical gaps in understanding the motion of large droplets. In applications like spray combustion, droplets of various sizes are generated and move with the flow. Large droplets tend to deform in the flow, and have complex interactions with the flow because of this deformation. To better model spray, the physical understanding of droplets need to be improved. Under spray conditions, droplets are subjected to a high temperature and pressure environment, and the coupling between liquid and gas is enhanced. Therefore, the deformation and internal circulation will affect droplet drag coefficient more significantly than in atmospheric conditions. To study the mechanism on how droplet shape and internal circulation influence droplet dynamics, we will use direct numerical simulation (DNS) to simulate a droplet falling at its terminal velocity in high pressure air. An in-house code developed for interface-capturing DNS of multiphase flows will be employed for the simulation. The drag coefficient is calculated, and the results are consistent with existing literature for slightly deformed droplets. The results show that the drag coefficient is directly related to the droplet deformation and droplet internal circulation. The paper also develops a theory to account the effect of Weber number and liquid/gas properties in droplet deformation.

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